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Content-based Lecture Video Indexing Martin Halvorsen.

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Presentation on theme: "Content-based Lecture Video Indexing Martin Halvorsen."— Presentation transcript:

1 Content-based Lecture Video Indexing Martin Halvorsen

2 Content-based Lecture Video Indexing Content Introduction Research Questions Background Proposed System Implementations Conclusions

3 Content-based Lecture Video Indexing IntroductionIntroduction

4 Introduction Blackboard presentations considered as essential and indispensable Hard to navigate through traditional videos Lack of expertise and time consuming

5 Content-based Lecture Video Indexing Research questions

6 Content-based Lecture Video Indexing Research questions Q1: How can foreground/background segmentation in a lecture video work for different writing-boards?

7 Content-based Lecture Video Indexing Research questions Q2: How to automatically extract meta-data from lecture videos?

8 Content-based Lecture Video Indexing Research questions Q3: How to use such meta-data for indexing and searching of lecture videos?

9 Content-based Lecture Video Indexing BackgroundBackground

10 Background Tracking, detection and separation algortihms Motion estimation, background models, statistical estimated models

11 Content-based Lecture Video Indexing Background Eirik Grythe – segmentation and text detection Synne Repp – simulated indexing alg.

12 Content-based Lecture Video Indexing Proposed System

13 Content-based Lecture Video Indexing Proposed system Superior blockdiagram of the proposed system Blackboard extractionMetadata ExtractionIndex GenerationF/B Segmentation

14 Content-based Lecture Video Indexing Teacher segmentation

15 Content-based Lecture Video Indexing Teacher segmentation Motion estimation - SAD

16 Content-based Lecture Video Indexing Teacher segmentation Morphological operations to close holes in the detection

17 Content-based Lecture Video Indexing Teacher segmentation Using motion history to improve the segmentation algorithm

18 Content-based Lecture Video Indexing Teacher segmentation Replace blocks that has motion in it

19 Content-based Lecture Video Indexing Teacher segmentation Demonstration

20 Content-based Lecture Video Indexing Meta-data extraction

21 Content-based Lecture Video Indexing Meta-data extraction What is meta-data? How to extract blackboard content? Statistics

22 Content-based Lecture Video Indexing Meta-data extraction Demonstration

23 Content-based Lecture Video Indexing IndexingIndexing

24 Indexing When to extract an image? Search a lecture video using extracted features

25 Content-based Lecture Video Indexing ConclusionsConclusions

26 Conclusions Adaptive segmentation possible by using motion estimation Extraction of content is possible using image difference Meta-data is possible to extract using a foreground model to compare against new content Statistics of extracted meta-data can be used to automatically index a lecture video

27 Content-based Lecture Video Indexing The end


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